Excitation-contraction coupling, control of activator calcium release, and sequestration and redistribution of intracellular calcium, are all vital functions of cardiac SR. Defects in these functions would impair cardiac contractility and is thought to contribute to heart failure. Calsequestrin is the major SR Ca2+- binding protein in heart and is highly localized to junctional SR lumens. Despite decades of speculation concerning its role in physiological release of Ca2+, the exact function of calsequestrin remains unknown. It is known to bind to junctional face proteins junction and triadan, which are thought to couple Ca2+ binding by calsequestrin to release of activator Ca2+ through the ryanodine receptor. In addition, calsequestrin undergoes a highly specific phosphorylation within intracellular membrane compartments that persists in the mature protein; a reaction that occurs for only a select set of resident SR and ER proteins. We propose to carry out biochemical, physiological, and immunocytochemical experiments to determine calsequestrin function in heart cells, and to test the hypothesis that calsequestrin phosphorylation is part of is physiological function or its cell biological processing and targeting.
Aim 1 will investigate mechanisms of calsequestrin phosphorylation and dephosphorylation, and transduction of this signal in heart cells. These experiments will be directed at identifying protein targets of phospho-calsequestrin relative to the dephosphorylated protein using affinity-chromatographic techniques, and by localization of the cellular site of calsequestrin phosphorylation using subcellular fractionation following adenovirus infections with calsequestrin or phosphorylation-site mutants.
Aim 2 will investigate the effects of wild-type and non-phosphorylatable calsequestrin on heart cell physiology by examining effects of these protein forms on voltage and caffeine- induced Ca2+ transients, on the rate and extent of tension development, on kinetics of Ca2+ accumulation by SR vesicles, and effects of twitch on the extent of calsequestrin phosphorylation.
Aim 3 will use immunocytochemistry and electron microscopy to compare the subcellular localization of calsequestrin or phosphorylation state mutants following overexpression in heart cells. The experiments outlined in these Specific Aims investigate new areas of SR biology by investigating cell biological features that are specific to calsequestrin, reliant upon its phosphorylation, and thereby unique to the cardiac isoform and cardiac SR function.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
1R01HL062586-01A2
Application #
6194429
Study Section
Pharmacology A Study Section (PHRA)
Project Start
2000-07-01
Project End
2004-06-30
Budget Start
2000-07-01
Budget End
2001-06-30
Support Year
1
Fiscal Year
2000
Total Cost
$294,178
Indirect Cost
Name
Wayne State University
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
City
Detroit
State
MI
Country
United States
Zip Code
48202
Sleiman, Naama H; McFarland, Timothy P; Jones, Larry R et al. (2015) Transitions of protein traffic from cardiac ER to junctional SR. J Mol Cell Cardiol 81:34-45
Jacob, Sony; Sleiman, Naama H; Kern, Stephanie et al. (2013) Altered calsequestrin glycan processing is common to diverse models of canine heart failure. Mol Cell Biochem 377:11-21
Guo, Ang; Cala, Steven E; Song, Long-Sheng (2012) Calsequestrin accumulation in rough endoplasmic reticulum promotes perinuclear Ca2+ release. J Biol Chem 287:16670-80
McFarland, Timothy P; Sleiman, Naama H; Yaeger, Daniel B et al. (2011) The cytosolic protein kinase CK2 phosphorylates cardiac calsequestrin in intact cells. Mol Cell Biochem 353:81-91
McFarland, Timothy P; Milstein, Michelle L; Cala, Steven E (2010) Rough endoplasmic reticulum to junctional sarcoplasmic reticulum trafficking of calsequestrin in adult cardiomyocytes. J Mol Cell Cardiol 49:556-64
Milstein, Michelle L; Houle, Timothy D; Cala, Steven E (2009) Calsequestrin isoforms localize to different ER subcompartments: evidence for polymer and heteropolymer-dependent localization. Exp Cell Res 315:523-34
Milstein, Michelle L; McFarland, Timothy P; Marsh, James D et al. (2008) Inefficient glycosylation leads to high steady-state levels of actively degrading cardiac triadin-1. J Biol Chem 283:1929-35
Houle, Timothy D; Ram, Michal L; McMurray, Walter J et al. (2006) Different endoplasmic reticulum trafficking and processing pathways for calsequestrin (CSQ) and epitope-tagged CSQ. Exp Cell Res 312:4150-61
Kiarash, Arash; Kelly, Carmen E; Phinney, Brett S et al. (2004) Defective glycosylation of calsequestrin in heart failure. Cardiovasc Res 63:264-72
Ram, Michal L; Kiarash, Arash; Marsh, James D et al. (2004) Phosphorylation and dephosphorylation of calsequestrin on CK2-sensitive sites in heart. Mol Cell Biochem 266:209-17

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